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  1. Sentiment Analysis and its Application in Educational Data Mining
    Author: Sweta, Soni
    Published: 2024
    Publisher:  Springer Verlag, Singapore, Singapore

    The book delves into the fundamental concepts of sentiment analysis, its techniques, and its practical applications in the context of educational data. The book begins by introducing the concept of sentiment analysis and its relevance in educational... more

     

    The book delves into the fundamental concepts of sentiment analysis, its techniques, and its practical applications in the context of educational data. The book begins by introducing the concept of sentiment analysis and its relevance in educational settings. It provides a thorough overview of the various techniques used for sentiment analysis, including natural language processing, machine learning, and deep learning algorithms. The subsequent chapters explore applications of sentiment analysis in educational data mining across multiple domains. The book illustrates how sentiment analysis can be employed to analyze student feedback and sentiment patterns, enabling educators to gain valuable insights into student engagement, motivation, and satisfaction. It also examines how sentiment analysis can be used to identify and address students' emotional states, such as stress, boredom, or confusion, leading to more personalized and effective interventions. Furthermore, the book explores the integration of sentiment analysis with other educational data mining techniques, such as clustering, classification, and predictive modeling. It showcases real-world case studies and examples that demonstrate how sentiment analysis can be combined with these approaches to improve educational decision-making, curriculum design, and adaptive learning systems

     

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    Content information
    Source: Union catalogues
    Language: English
    Media type: Book
    Format: Print
    ISBN: 9789819724734
    Series: SpringerBriefs in Computational Intelligence, SpringerBriefs in Applied Sciences and Technology
    Subjects: COM094000; COMPUTERS / Database Management / Data Mining; COMPUTERS / Expert Systems; COMPUTERS / Natural Language Processing; Data Mining; Data mining; EDUCATION / General; Education; Expert systems / knowledge-based systems; Machine learning; Maschinelles Lernen; Natural language & machine translation; Natürliche Sprachen und maschinelle Übersetzung; Pädagogik; Wissensbasierte Systeme, Expertensysteme
    Scope: 97 Seiten
    Notes:

    Chapter 1: Sentiment Analysis in Natural Language Processing.- Chapter 2: An Overview of Educational Data Mining.- Chapter 3: Impact of Sentiment Analysis in Education Sector.- Chapter 4: Techniques and Approaches in Sentiment Analysis.- Chapter 5: Machine Learning with Sentiment Analysis.- Chapter 6: Incorporation of Sentiment Analysis with Educational Data Mining.- Chapter 7: Preformation Evaluation using Sentiment Analysis.